Home > Press > Rice experts unveil submicroscopic tunable, optical amplifier: Photonics researchers create first nanoscale 'optical parametric amplifier'
![]() |
Rice University's new light-amplifying nanoparticle consists of a 190-nanometer diameter sphere of barium tin oxide surrounded by a 30-nanometer-thick shell of gold. Image by Alejandro Manjavacas /Rice University |
Abstract:
Rice University photonics researchers have unveiled a new nanoparticle amplifier that can generate infrared light and boost the output of one light by capturing and converting energy from a second light.
The innovation, the latest from Rice's Laboratory for Nanophotonics (LANP), is described online in a paper in the American Chemical Society journal Nano Letters. The device functions much like a laser, but while lasers have a fixed output frequency, the output from Rice's nanoscale "optical parametric amplifier" (OPA) can be tuned over a range of frequencies that includes a portion of the infrared spectrum.
"Tunable infrared OPA light sources today cost around a $100,000 and take up a good bit of space on a tabletop or lab bench," said study lead author Yu Zhang, a former Rice graduate student at LANP. "What we've demonstrated, in principle, is a single nanoparticle that serves the same function and is about 400 nanometers in diameter."
By comparison, that's about 15 times smaller than a red blood cell, and Zhang said shrinking an infrared light source to such a small scale could open doors to new kinds of chemical sensing and molecular imaging that aren't possible with today's state-of-the-art nanoscale infrared spectroscopy.
Zhang, who earned his Ph.D. from Rice in 2014 and today works at Lam Research in Fremont, Calif., said parametric amplification has been used for decades in microelectronics. It involves two input signals, one weak and one strong, and two corresponding outputs. The outputs are also strong and weak, but the energy from the more powerful input -- known as the "pump" -- is used to amplify the weak incoming "signal" and make it the more powerful output. The low-power output -- known as the "idler" -- contains a residual fraction of the pump energy.
"Optical parametric amplifiers operate with light rather than electricity," said LANP Director Naomi Halas, the lead scientist on the new study and the director of Rice's Smalley-Curl Institute. "In OPAs, a strong pump light dramatically amplifies a weak 'seed' signal and generates an idler light at the same time. In our case, the pump and signal frequencies are visible, and the idler is infrared."
While the pump laser in Rice's device has a fixed wavelength, both the signal and idler frequencies are tunable.
"People have previously demonstrated nanoscale infrared lasers, but we believe this is the first tunable nanoscale infrared light source," Halas said.
The breakthrough is the latest for Halas' lab, the research arm of Rice's Smalley-Curl Institute that specializes in the study of light-activated nanoparticles. For example, some metallic nanoparticles convert light into plasmons, waves of electrons that flow like a fluid across a particle's surface. In dozens of studies over the past two decades, LANP researchers have explored the basic physics of plasmonics and shown that plasmonic interactions can be harnessed for applications as diverse as medical diagnostics, cancer treatment, solar-energy collection and optical computing.
One of LANP's specialties is the design of multifunctional plasmonic nanoparticles that interact with light in more than one way. Zhang said the nanoscale OPA project required LANP's team to create a single particle that could simultaneously resonate with three frequencies of light.
"There are intrinsic inefficiencies in the OPA process, but we were able to make up for these by designing a surface plasmon with triple resonances at the pump, signal and idler frequencies," Zhang said. "The strategy allowed us to demonstrate tunable emission over a range of infrared frequencies -- an important potential step for further development of the technology."
Zhang said former Rice physics postdoctoral researcher Alejandro Manjavacas -- now at the University of New Mexico -- performed the necessary calculations to design the triple resonant nanoparticle.
Halas said the project also showcased the multidisciplinary strength of LANP. "In nanophotonics, applied and fundamental research go hand in hand because a deep understanding of the fundamental physics is what allows us to optimize particle design. That's why one of LANP's primary missions is to bring theoreticians and experimentalists together, and this project is a great example of how that pays off."
Halas is Rice's Stanley C. Moore Professor of Electrical and Computer Engineering and professor of chemistry, bioengineering, physics and astronomy, and materials science and nanoengineering. Manjavacas is assistant professor of physics and astronomy at the University of New Mexico. Additional Rice co-authors include Nathaniel Hogan, Linan Zhou, Ciceron Ayala-Orozco, Liangliang Dong, Jared Day and Peter Nordlander.
The research was supported by the Welch Foundation, the Air Force Office of Scientific Research and the University of New Mexico.
####
About Rice University
Located on a 300-acre forested campus in Houston, Rice University is consistently ranked among the nation’s top 20 universities by U.S. News & World Report. Rice has highly respected schools of Architecture, Business, Continuing Studies, Engineering, Humanities, Music, Natural Sciences and Social Sciences and is home to the Baker Institute for Public Policy. With 3,910 undergraduates and 2,809 graduate students, Rice’s undergraduate student-to-faculty ratio is 6-to-1. Its residential college system builds close-knit communities and lifelong friendships, just one reason why Rice is ranked No. 1 for best quality of life and for lots of race/class interaction by the Princeton Review. Rice is also rated as a best value among private universities by Kiplinger’s Personal Finance. To read “What they’re saying about Rice,” go to tinyurl.com/RiceUniversityoverview.
Follow Rice News and Media Relations on Twitter @RiceUNews.
For more information, please click here
Contacts:
Jade Boyd
713-348-6778
jadeboyd@rice.edu
Copyright © Rice University
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
Related Links |
A copy of the paper is available at:
Smalley-Curl Institute home page:
Halas Research Group home page:
Related News Press |
Chemistry
Quantum interference in molecule-surface collisions February 28th, 2025
New method in the fight against forever chemicals September 13th, 2024
News and information
Closing the gaps — MXene-coating filters can enhance performance and reusability February 28th, 2025
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
Imaging
Turning up the signal November 8th, 2024
New discovery aims to improve the design of microelectronic devices September 13th, 2024
Govt.-Legislation/Regulation/Funding/Policy
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
Quantum engineers ‘squeeze’ laser frequency combs to make more sensitive gas sensors January 17th, 2025
Chainmail-like material could be the future of armor: First 2D mechanically interlocked polymer exhibits exceptional flexibility and strength January 17th, 2025
Possible Futures
Closing the gaps — MXene-coating filters can enhance performance and reusability February 28th, 2025
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
Discoveries
Closing the gaps — MXene-coating filters can enhance performance and reusability February 28th, 2025
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
Announcements
Closing the gaps — MXene-coating filters can enhance performance and reusability February 28th, 2025
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
Leading the charge to better batteries February 28th, 2025
Quantum interference in molecule-surface collisions February 28th, 2025
New ocelot chip makes strides in quantum computing: Based on "cat qubits," the technology provides a new way to reduce quantum errors February 28th, 2025
Tools
Rice researchers harness gravity to create low-cost device for rapid cell analysis February 28th, 2025
New 2D multifractal tools delve into Pollock's expressionism January 17th, 2025
Turning up the signal November 8th, 2024
Military
Quantum engineers ‘squeeze’ laser frequency combs to make more sensitive gas sensors January 17th, 2025
Chainmail-like material could be the future of armor: First 2D mechanically interlocked polymer exhibits exceptional flexibility and strength January 17th, 2025
Single atoms show their true color July 5th, 2024
NRL charters Navy’s quantum inertial navigation path to reduce drift April 5th, 2024
Grants/Sponsored Research/Awards/Scholarships/Gifts/Contests/Honors/Records
New discovery aims to improve the design of microelectronic devices September 13th, 2024
Physicists unlock the secret of elusive quantum negative entanglement entropy using simple classical hardware August 16th, 2024
Atomic force microscopy in 3D July 5th, 2024
Photonics/Optics/Lasers
Bringing the power of tabletop precision lasers for quantum science to the chip scale December 13th, 2024
Researchers succeed in controlling quantum states in a new energy range December 13th, 2024
Groundbreaking research unveils unified theory for optical singularities in photonic microstructures December 13th, 2024
Research partnerships
SMART researchers pioneer first-of-its-kind nanosensor for real-time iron detection in plants February 28th, 2025
Gene therapy relieves back pain, repairs damaged disc in mice: Study suggests nanocarriers loaded with DNA could replace opioids May 17th, 2024
Discovery points path to flash-like memory for storing qubits: Rice find could hasten development of nonvolatile quantum memory April 5th, 2024
Researchers’ approach may protect quantum computers from attacks March 8th, 2024
![]() |
||
![]() |
||
The latest news from around the world, FREE | ||
![]() |
![]() |
||
Premium Products | ||
![]() |
||
Only the news you want to read!
Learn More |
||
![]() |
||
Full-service, expert consulting
Learn More |
||
![]() |